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通过界面工程调节单层 FeSe 的能带结构和超导性。

Tuning the band structure and superconductivity in single-layer FeSe by interface engineering.

机构信息

1] State Key Laboratory of Surface Physics, Department of Physics, Fudan University, Shanghai 200433, China [2] Advanced Materials Laboratory, Fudan University, Shanghai 200433, China.

1] State Key Laboratory of Surface Physics, Department of Physics, Fudan University, Shanghai 200433, China [2] Key Laboratory for Computational Physical Sciences (Ministry of Education), Fudan University, Shanghai 200433, China.

出版信息

Nat Commun. 2014 Sep 26;5:5044. doi: 10.1038/ncomms6044.

Abstract

The interface between transition metal compounds provides a rich playground for emergent phenomena. Recently, significantly enhanced superconductivity has been reported for single-layer FeSe on Nb-doped SrTiO3 substrate. Yet it remains mysterious how the interface affects the superconductivity. Here we use in situ angle-resolved photoemission spectroscopy to investigate various FeSe-based heterostructures grown by molecular beam epitaxy, and uncover that electronic correlations and superconducting gap-closing temperature (Tg) are tuned by interfacial effects. Tg up to 75 K is observed in extremely tensile-strained single-layer FeSe on Nb-doped BaTiO3, which sets a record high pairing temperature for both Fe-based superconductor and monolayer-thick films, providing a promising prospect on realizing more cost-effective superconducting device. Moreover, our results exclude the direct correlation between superconductivity and tensile strain or the energy of an interfacial phonon mode, and highlight the critical and non-trivial role of FeSe/oxide interface on the high Tg, which provides new clues for understanding its origin.

摘要

过渡金属化合物之间的界面为新兴现象提供了丰富的研究领域。最近,在掺氮 SrTiO3 衬底上的单层 FeSe 中报告了显著增强的超导性。然而,界面如何影响超导性仍然是个谜。在这里,我们使用原位角分辨光发射谱研究了通过分子束外延生长的各种基于 FeSe 的异质结构,并揭示了界面效应可以调节电子相关和超导能隙关闭温度(Tg)。在掺氮 BaTiO3 上的极度拉伸应变的单层 FeSe 中观察到 Tg 高达 75 K,这为 Fe 基超导体和单层厚膜设定了最高的配对温度,为实现更具成本效益的超导器件提供了有前景的前景。此外,我们的结果排除了超导性与拉伸应变或界面声子模式能量之间的直接相关性,并强调了 FeSe/氧化物界面在高 Tg 中的关键和非平凡作用,这为理解其起源提供了新的线索。

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